Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to write a recursive method that adds an item to a tree and returns the tree node corresponding to that item.

enum BstNode {
    Node(int, ~BstNode, ~BstNode),
    Leaf
}

impl BstNode {
    fn insert<'a>(&'a mut self, item: int) -> &'a mut BstNode {
        match *self {
            Leaf => {
                *self = Node(item, ~Leaf, ~Leaf);
                self
            },
            Node(ref node_item, ref mut left, ref mut right) =>
                match item.cmp(node_item) {
                    Less => left.insert(item),
                    Equal => self,
                    Greater => right.insert(item)
                }
        }
    }
}

I'm bitten by the following error:

bst.rs:19:30: 19:34 error: cannot move out of `self` because it is borrowed
bst.rs:19                     Equal => self,
                                       ^~~~
bst.rs:16:18: 16:31 note: borrow of `self#0` occurs here
bst.rs:16             Node(ref node_item, ref mut left, ref mut right) =>
                           ^~~~~~~~~~~~~

What does "moving out of something" mean? How do I fix this error?

I'm using Rust 0.10.

share|improve this question

1 Answer 1

up vote 2 down vote accepted

In your example node_item, left and right are owned by the self variable. The borrow checker doesn't know that in the Equal branch of

match item.cmp(node_item) {
    Less => left.insert(item),
    Equal => self,
    Greater => right.insert(item)
}

neither node_item, left nor right is used, but it sees that self is moving (you are returning it) while those 3 variables are still borrowed (you are still in the lexical scope of the match, where they are borrowed). I think this is a known bug that this behavior is too strict, see issue #6993.

As for the best way to fix the code, honestly I'm not sure. I would go with using a completely different structure (at least until the previous bug is fixed) :

pub struct BstNode {
  item: int,
  left: Option<~BstNode>,
  right: Option<~BstNode>
}

impl BstNode {
    pub fn insert<'a>(&'a mut self, item: int) -> &'a mut BstNode {
        match item.cmp(&self.item) {
            Less => match self.left {
              Some(ref mut lnode) => lnode.insert(item),
              None => {
                self.left = Some(~BstNode {item: item, left: None, right: None});
                &mut **self.left.as_mut().unwrap()
              }
            },
            Equal => self,
            Greater => match self.right {
              Some(ref mut rnode) => rnode.insert(item),
              None => {
                self.right = Some(~BstNode {item: item, left: None, right: None});
                &mut **self.right.as_mut().unwrap()
              }
            }
        }
    }
}

This way when you return your node, you never have any of its members still borrowed.

share|improve this answer
    
Thanks! The way to fix my code while preserving the data structure turned out to match Node(node_item, _, _) (note the lack of ref) and extract left/right via yet another pattern match in the Less/Greater branches. –  Krzysiek Goj Apr 28 at 20:51

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.